Energy dissipation measurements in frequency-modulated scanning probe microscopy

被引:26
|
作者
Proksch, Roger [1 ]
Kalinin, Sergei V. [2 ]
机构
[1] Asylum Res, Santa Barbara, CA USA
[2] Oak Ridge Natl Lab, Oak Ridge, TN USA
关键词
Crosstalk - Yttrium iron garnet - Frequency modulation - Energy dissipation - Iron alloys - Sodium chloride;
D O I
10.1088/0957-4484/21/45/455705
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Local dissipation measurements by scanning probe microscopy have attracted increasing interest as a method for probing energy losses and hysteretic phenomena due to magnetic, electrical, and structural transformations at the tip-surface junction. One challenge of this technique is the lack of a standard for ensuring quantification of the dissipation signal. In the following, we explored magnetic dissipation imaging of an yttrium-iron garnet (YIG) sample, using a number of similar but not identical cantilever probes. Typical frequency-dependent dispersion of the actuator-probe assembly commonly approached +/- 1 part in 10(3) Hz(-1), much larger than the minimum detectable level of +/- 1 part in 10(5) Hz(-1). This cantilever-dependent behavior results in a strong crosstalk between the conservative (frequency) and dissipative channels. This crosstalk was very apparent in the YIG dissipation images and in fact should be an inherent feature of single-frequency heterodyne detection schemes. It may also be a common effect in other dissipation imaging, even down to the atomic level, and in particular may be a significant issue when there are correlations between the conservative and dissipative components. On the other hand, we present a simple method for correcting for this effect. This correction technique resulted in self-consistent results for the YIG dissipation measurements and would presumably be effective for other systems as well.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] On the pitch of frequency-modulated tones
    Youtz, REP
    Stevens, SS
    AMERICAN JOURNAL OF PSYCHOLOGY, 1938, 51 : 521 - 526
  • [22] PITCH OF FREQUENCY-MODULATED SIGNALS
    MCCLELLA.KD
    BRANDT, JF
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1969, 45 (01): : 293 - &
  • [23] FLUORESCENCE IN FREQUENCY-MODULATED BEAMS - A PROBE OF THE CORRELATION-FUNCTIONS OF ATOMIC INVERSION
    AGARWAL, GS
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 1984, 1 (06) : 865 - 867
  • [24] Parametric study of a frequency-modulated pulse jet by measurements of flow characteristics
    Abdolahipour, Soheila
    Mani, Mahmoud
    Shams Taleghani, Arash
    PHYSICA SCRIPTA, 2021, 96 (12)
  • [25] FREQUENCY-MODULATED INVERSE ECHO
    NOVOSELOV, OV
    TSIFRINOVICH, VL
    FIZIKA TVERDOGO TELA, 1988, 30 (03): : 791 - 793
  • [26] ROUGHNESS OF FREQUENCY-MODULATED TONES
    KEMP, S
    ACUSTICA, 1982, 50 (02): : 126 - 133
  • [27] Frequency-modulated ratchet with autoresonance
    Makarov, D. V.
    Sosedko, E. V.
    Uleysky, M. Yu.
    EUROPEAN PHYSICAL JOURNAL B, 2010, 73 (04): : 571 - 579
  • [28] Frequency-modulated comb LIDAR
    Kuse, N.
    Fermann, M. E.
    APL PHOTONICS, 2019, 4 (10)
  • [29] IMAGING WITH FREQUENCY-MODULATED RETICLES
    SANDERS, JS
    DRIGGERS, RG
    HALFORD, CE
    GRIFFIN, ST
    OPTICAL ENGINEERING, 1991, 30 (11) : 1720 - 1724
  • [30] Frequency-modulated comb LIDAR
    Kuse, Naoya
    Fermann, Martin E.
    2020 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2020,